Mapping Cryptic Phosphorylation Sites in the Human Proteome

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The paper describes a strategy for mapping “cryptic” phosphorylation sites across the human proteome, using high-throughput proteomics to identify phosphorylation events that are not readily detected by conventional approaches. Across the study, the authors report a broad set of phosphorylation sites and associated sequence features, expanding the known landscape of regulatory phosphorylation. A key limitation is that the discovery relies on mass-spectrometry detection and the accuracy of site assignment from peptide spectra, which constrains confident localization of some sites. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Advances in computational and experimental methods have revealed the existence of transient, non-native protein folding intermediates that could play roles in disparate biological processes, from regulation of protein expression to disease-relevant misfolding mechanisms. Here, we tested the possibility that specific post-translational modifications may involve residues exposed during the folding process by assessing the solvent accessibility of 87,138 post-translationally modified amino acids in the human proteome. Unexpectedly, we found that one-third of phosphorylated proteins present at least one phosphosite completely buried within the protein’s inner core. Computational and experimental analyses suggest that these cryptic phosphosites may become exposed during the folding process, where their modification could destabilize native structures and trigger protein degradation. Phylogenetic investigation also reveals that cryptic phosphosites are more conserved than surface-exposed phosphorylated residues. Finally, cross-referencing with cancer mutation databases suggests that phosphomimetic mutations in cryptic phosphosites can increase tumor fitness by inactivating specific onco-suppressors. These findings define a novel role for co-translational phosphorylation in shaping protein folding and expression, laying the groundwork for exploring the implications of cryptic phosphosites in health and disease.
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europepmc
last seen: 2026-05-20T01:45:00.602351+00:00
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License: CC-BY-4.0